FINGERPRINT SENSING MODULE
In an aspect, a fingerprint sensing module configured to be integrated in a device for biometric authentication of a user of the device is provided. The fingerprint sensing module comprises a fingerprint sensor and a display configured to display information to the user; the display comprising pixel elements being arranged in the display such that the pixel elements do not obscure a sensing area of the fingerprint sensor in which area the fingerprint sensor is being configured to detect a finger of the user.
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The present disclosure relates to a fingerprint sensing module configured to be integrated in a device for biometric authentication of a user of the device, and a method of the device comprising the fingerprint sensing module of displaying information to a user based on biometric data of the user.
BACKGROUNDTo improve security and convenience, fingerprint sensors are integrated in many devices that do not have display capability or in other way of communicating with a user, such as locks, electronic luggage tags, smartcards, etc. Such devices would benefit from being able to give the user feedback about success of authentication or to provide the user with a code that can be used for further secure access based on a successful authentication.
A device such as a smart card being equipped with a fingerprint sensor and a display function would solve this problem and allow for integration into the types of devices mentioned above. Further, in case of smart credit cards, it is of interest to be able to provide for fingerprint activated dynamic Card Verification Value (CVV) code or Card Verification Code (CVC), i.e. new generated CVVs/CVCs at regular intervals in order to prevent card-not-present fraud.
However, such solutions require additional components and thus a relatively great space which is not typically available, or at last not desired, in physically small devices such as smartcards.
SUMMARYOne object is to solve, or at least mitigate, this problem in the art and thus to provide an improved approach of combining biometric sensing and displaying of information on a device.
This object is attained in a first aspect by a fingerprint sensing module configured to be integrated in a device for biometric authentication of a user of the device. The fingerprint sensing module comprises a fingerprint sensor and a display being configured to display information to the user. The display comprises pixel elements being arranged in the display such that the pixel elements do not obscure a sensing area of the fingerprint sensor in which area the fingerprint sensor is being configured to detect a finger of the user.
Advantageously, the fingerprint sensing module according to embodiments enables a display being integrated with a fingerprint sensor, which has as an advantage that less space is required in the device in which it is integrated and also on a surface of the device, such as e.g. a smartcard.
Further, less components are required as compared to using a separate, non-integrated display. Advantageously, a reduced number of components to be integrated into the smartcard/device is a great advantage as regards simplification, yield loss reduction, supply chain complexity, etc.
Further advantageous is that the solution provided addresses that in particular capacitive fingerprint sensors, which are commonly used for integration with devices such as smartcards, are sensitive to disturbances of the capacitive signal caused by materials placed above the capacitive sensor elements of the fingerprint sensor.
Thus, with the solution provided with the fingerprint sensing module, the pixel elements of the display are not located directly above the sensor elements of the sensor.
In an embodiment, the fingerprint sensing module further comprises a substrate on which the display is arranged, the substrate further being configured to have an opening through which the fingerprint sensor is arranged to protrude into contact with the display.
In an embodiment, the fingerprint sensing module further comprises a substrate on which the display is arranged, the substrate is composed of a dielectric material (such as a polymer) with a dielectric constant suitable for transferring a capacitive fingerprint sensing signal from which the fingerprint sensor is capable of capturing biometric data of a finger of the user contacting the display.
In an alternative embodiment, the substrate is composed of a material having optical transparency suitable for transferring an optical fingerprint sensing signal from, or a material having acoustic impedance suitable for transferring an acoustic fingerprint sensing signal.
In an embodiment, the display is arranged to be screen-printed onto the substrate of the fingerprint sensing module.
In an embodiment, the fingerprint sensor of the fingerprint sensing module further comprises at least one connection point configured to connect the fingerprint sensor to the device in which it is integrated.
In an embodiment, the display of the fingerprint sensing module further comprises at least one connection point configured to connect the pixel elements of the display to the device in which it is integrated.
In embodiments, the device in which the fingerprint sensing module is integrated is a lock, electronic luggage tag, or a smartcard.
Many different applications may be envisaged, such as intelligent household appliances in the form of e.g. refrigerators, personalized settings for coffee machines, customizable settings for microwave ovens, or Internet-of-Things (IoT) devices, etc.
In a second aspect, a method of a device comprising the fingerprint sensing module according to the first aspect is provided for displaying information to a user based on biometric data of the user. The method comprises extracting biometric data of the user captured by the fingerprint sensor, comparing the extracted fingerprint feature data with enrolled biometric data, and if there is a match generating information based on the extracted biometric data, and displaying the generated information on the display of the fingerprint sensing module.
Advantageously, with the method of the second aspect, codes such as e.g. CVV codes can dynamically be generated by a smartcard and displayed to the user based on biometric data of the user.
In an embodiment, in case there is no match, the information is not generated and the method comprises displaying information indicating unsuccessful authentication on the display of the fingerprint sensing module.
In an embodiment, the generated information comprises a CVV code or CVC based on the biometric data, instructions to the user how to place her finger on the fingerprint sensing module during enrolment or authentication, or information regarding successful or unsuccessful authentication with the device, being for instance a smartcard.
In a conventional smartcard with biometric authentication, it is not possible to guide a user during the enrolment process. For instance, it may be desirable to guide the user during enrolment to slow down or speed up the process of having the finger repeatedly touch the sensor, rotate the finger, dry finger, notify the user of number of touches left for the enrolment, etc.
Hence, the display in the fingerprint sensing module provides for an improved and more user-friendly enrolment procedure, since the display can be used for guiding the user to be enrolled regarding, for example, finger position, finger rotation or sensor contamination, etc. This may provide for a faster enrolment procedure and/or a higher quality of the enrolled fingerprint representation.
In a third aspect, a computer program comprising computer-executable instructions is provided for causing the device comprising the fingerprint sensing module of the first aspect to perform steps recited in the method of the second aspect when the computer-executable instructions are executed on a processing unit included in the device.
In a fourth aspect, a computer program product comprising a computer readable medium is provided, the computer readable medium having the computer program according to the third aspect embodied thereon.
Further embodiments will be described in the following.
Generally, all terms used in the claims are to be interpreted according to their ordinary meaning in the technical field, unless explicitly defined otherwise herein. All references to “a/an/the element, apparatus, component, means, step, etc.” are to be interpreted openly as referring to at least one instance of the element, apparatus, component, means, step, etc., unless explicitly stated otherwise. The steps of any method disclosed herein do not have to be performed in the exact order disclosed, unless explicitly stated.
Aspects and embodiments are now described, by way of example, with reference to the accompanying drawings, in which:
The aspects of the present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which certain embodiments of the invention are shown.
These aspects may, however, be embodied in many different forms and should not be construed as limiting; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and to fully convey the scope of all aspects of invention to those skilled in the art. Like numbers refer to like elements throughout the description.
Now, as previously discussed, assuming that the smartcard 100 further is to be provided with a display (not shown in
This is overcome by a fingerprint sensing module 120 of an embodiment schematically illustrated with reference to
Advantageously, with the fingerprint sensing module 120 illustrated in
A fingerprint sensing module 120 of another embodiment is schematically illustrated with reference to Figure Sa configured to be arranged in a device such as a smartcard 100 for biometric authentication purposes. The fingerprint sensing module 120 comprises a display 121 (illustrated with dashed lines) seamlessly integrated with a capacitive fingerprint sensor 102 through a beneficial cover layer. Again, the fingerprint sensor 102 comprises a sensor die pixel matrix 104 arranged in an overmold 106 typically made of a plastic material and covered by for instance glass, a color coating, anti-fingerprint/hydrophobic/oleophobic coating, etc., for sensor protective reasons or for providing further functionality. Further, the fingerprint sensor 102 is placed on a printed circuit board 109 (PCB) inside the smart card 100.
As further can be seen, the T-shaped fingerprint sensing module 120 is arranged in a recess 113 of the main body 101 of the smartcard 100. The upper plane of the display 121 may slightly protrude from an upper exterior plane of the main body 101, may be slightly embedded in the main body 101, or may be more or less flush with an upper exterior plane of the main body 101 (as illustrated in
The fingerprint sensing module 120 comprises connection pads 126 in order to form an electrical connection with the via connections 164 of the smart card 100. The fingerprint sensing module 120 may for instance be attached to the smartcard 100 using a conductive adhesive or a conductive solder material at the locations of the via connections 164.
Moreover, the fingerprint die 104 is electrically connected to first substrate 109 via a bond wire 123 (even through-silicon-via (TSV) connections reaching through the first substrate 109 alternatively could be used) while the first substrate 109 is connected to substrate in via another bond wire 124 (and further on to the smartcard via the connection pads 126).
Pixel elements 122 of the display 121 are arranged inside the display such that they do not obscure the fingerprint sensor 102, or at least not a central area (referred to as sensing area) of the fingerprint sensor 102 where the fingerprint sensor capacitively detects a finger 201 of a user contacting an upper side of the display 121 and thus forms capacitive contact with the sensor 102 (i.e. the area directly above the die pixel matrix 104).
Advantageously, the fingerprint sensing module 120 according to the embodiment schematically illustrated with reference to
Further advantageous is that the solution provided addresses that capacitive fingerprint sensors, which are commonly used for integration with devices such as smartcards, are sensitive to disturbances of the capacitive signal caused by materials placed above the capacitive sensor elements 202 of the fingerprint sensor 102.
Thus, with the solution provided with the fingerprint sensing module 120 of Figure Sa, the pixel elements 122 of the display 121 are not located directly above the capacitive sensor elements of the sensor 102, i.e. not located directly above the fingerprint sensing area. It is noted that other sensing technologies suitable for fingerprint sensing, such as optical and ultrasonic, also suffer from the above stated problems.
With further reference to Figure Sa, in an embodiment, the display 121 can be arranged on top of the sensor 102 by screen printing the display 121 on the substrate in.
In another embodiment, the display 121 can be arranged on top of the sensor 102 by screen printing the display 121 on the substrate in, which may be a thin flexible plastic substrate. If so, there is no need to arrange the fingerprint sensor 102 in an opening of the substrate 111; rather the fingerprint sensor 102 is arranged under the substrate in acting as a cover to the fingerprint sensor 102 without disturbing the sensor signal. The thin flexible plastic substrate in is composed of a dielectric polymer material with a dielectric constant suitable for transferring a capacitive signal from which biometric data is captured by the sensor 102 and may be transparent or opaque.
Alternatively, in case optical or acoustic sensing is utilized, the substrate in is composed of a material having optical transparency suitable for transferring an optical fingerprint sensing signal from which the fingerprint sensor 102 is capable of capturing biometric data of a finger of the user contacting the display 121, or the substrate in is composed of a material having acoustic impedance suitable for transferring an acoustic optical fingerprint sensing signal from which the fingerprint sensor 102 is capable of capturing biometric data of a finger of the user contacting the display 121.
Advantageously, the display 121 is a flexible reflective display, such as an electronic paper display or an electrochromic display.
Moreover, another two connection points 124c, 124d are connected to a bottom side of the display 121 being embodied for instance by a protective cover film comprising pixel elements 121 not obscuring a sensing area of the fingerprint sensor 102. The two connection points 124c, 124d of the display 121 are also connected to e.g. the microprocessor 103 of the host device for controlling the pixel elements 122 of the display 121. For instance, the display 121 may be controlled by the microprocessor to notify the user that further enrolment of her fingerprint is required, to notify the user of successful authentication, or to display a new generated dynamic CVC.
In this embodiment, the fingerprint sensor 102, or rather the microprocessor 103, extracts in step S101 biometric data from the finger 201 contacting the display 121 and the sensor 102 via the two connection points 124c, 124d. Hence, the fingerprint sensor 102 captures an image of the finger contacting the sensing area and the microprocessor 103 extracts the biometric data therefrom.
The extracted biometric data is compared by the microprocessor 103 in step S102 to one or more previously enrolled biometric data templates stored in memory 105 and if there is a match, the user is successfully authenticated.
Upon successful authentication, the processor 103 generates a CVV code utilizing the extracted biometric data in step S103, which CVV code is to be used by the user to perform for instance an Internet transaction. The CVV code may be generated for instance using a random value generator with the extracted biometric data, or a subset of the data, as a seed for generating the CVV code.
If the user is not successfully authenticated in step S102, no CVV code is generated. Rather, it is optionally envisaged that the microprocessor 103 in step S105 displays information to the user on the display 121 indicating that the user is not authentication, such as an “X” or even a blinking “X”.
In this particular exemplifying embodiment, the user is successfully authenticated in step S102, and the new CVV code generated in step S103 is “612” as displayed in step S104 to the user on the display 121 of the smartcard 100 by having the microprocessor 103 provide the CVV code to the display 121 and the pixel elements 122 via one or both of the two connection points 124c, 124d connected to the bottom side of the display 121.
As is understood, the new generated CVV code “612” is transmitted from the smartcard 100 to a party with which the user engages in the Internet transaction such that the party may verify correctness of the CVV code provided by the user during the transaction. Further, as has been discussed, any useful and appropriate information may be displayed to the user on the display 121, such as instructions for the user for placing her finger on the sensing area of the sensor during enrolment of a fingerprint of the user.
In a conventional smartcard with biometric authentication, it is not possible to guide a user during the enrolment process. For instance, it may be desirable to guide the user during enrolment to slow down or speed up the process of having the finger repeatedly touch the sensor, rotate the finger, dry finger, notify the user of number of touches left for the enrolment, etc.
Hence, the display 121 in the fingerprint sensing module 120 provides for an improved and more user-friendly enrolment procedure, since the display 121 can be used for guiding the user to be enrolled regarding, for example, finger position, finger rotation or sensor contamination, etc. This may provide for a faster enrolment procedure and/or a higher quality of the enrolled fingerprint representation. Thus, any useful enrolment instructions can be provided to the user via the display 121.
With reference again to
In the art, most fingerprint sensing modules comprise a bezel on top of the fingerprint sensing module to ground the finger of a user contacting the sensor. In such module, it would be difficult to also implement the display functionality due to the grounding bezel arranged on top of the sensor.
Therefore, the fingerprint sensing module 120 according to embodiments may advantageously be implemented using so-called swinging pixel technology, where no bezel is utilized. Such technology is illustrated with reference to
As is schematically shown in
The charge amplifier 21 comprises at least one amplifier stage, here schematically illustrated as an operational amplifier (op amp) 27 having a first input (negative input) 29 connected to the finger electrode 19, a second input (positive input) 31 connected to the finger electrode potential providing circuitry 25, and an output 33. In addition, the charge amplifier 21 comprises a feedback capacitor 35 connected between the first input 29 and the output 33, and reset circuitry, here functionally illustrated as a switch 37, for allowing controllable discharge of the feedback capacitor 35. The charge amplifier 21 maybe reset by operating the reset circuitry 37 to discharge the feedback capacitor 35.
As is often the case for an op amp 27, the electrical potential at the first input 29 follows the electrical potential applied to the second input 31. Depending on the particular amplifier configuration, the potential at the first input 29 may be substantially the same as the potential at the second input 31, or there may be a substantially fixed offset between the potential at the first input 29 and the potential at the second input 31.
Using the finger electrode potential providing circuitry 25, a desired electrical potential, which may be time-varying or substantially constant in relation to a reference potential, can be provided to the finger electrode.
The finger electrode potential providing circuitry 25 may, for instance, be implemented as a number of controllable switches for controllably connecting the second input 31 to a selected voltage line carrying the desired electrical potential to be provided to the finger electrode. Alternatively, the finger electrode potential providing circuitry may be directly connectable to the finger electrode 19, to directly provide the desired electrical potential to the finger electrode.
Through control of the finger electrode potential providing circuitry 25, the finger electrode 19 can thus be provided with a chosen potential depending on the desired function of the particular measuring element 9 as will be described in greater detail further below.
When a given measuring element, say the center measuring element 9b in
In
The above-described change in potential difference between the finger electrode 19 of the sensing measuring element 9b, and the finger electrodes of the neighboring measuring elements 9a, 9c, results in a sensing signal Vs on the output 33 of the charge amplifier 21.
When the indicated sensing element 9b is thus controlled to be a sensing measuring element, the selection switch 23 is closed to connect the output 33 of the charge amplifier 21 to the readout line 39. The readout line 39, which may be a common readout line for a row or a column of the 2D measuring arrangement 13, is shown in
The sensing signals Vs from the sensing measuring element 9b are demodulated by sample-and-hold circuitry 43. The output of the sample-and-hold circuitry 43 is connected to an analog-to-digital converter 45 for converting the analog DC voltage signals output by the sample-and-hold circuitry to a digital representation of the measurement value for each selected sensing measuring element 9b.
By implementing the fingerprint sensing module according to embodiments using the structure illustrated in
The aspects of the present disclosure have mainly been described above with reference to a few embodiments and examples thereof. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the invention, as defined by the appended patent claims.
Thus, while various aspects and embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.
Claims
1. A fingerprint sensing module configured to be integrated in a device for biometric authentication of a user of the device, comprising:
- a fingerprint sensor;
- a display configured to display information to the user; the display comprising pixel elements being arranged in the display such that the pixel elements do not obscure a sensing area of the fingerprint sensor in which area the fingerprint sensor is being configured to detect a finger of the user.
2. The fingerprint sensing module of claim 1, further comprising:
- a substrate on which the display is arranged, the substrate further being configured to have an opening through which the fingerprint sensor is arranged to protrude into contact with the display.
3. The fingerprint sensing module of claim 1, further comprising:
- a substrate on which the display is arranged, the substrate being composed of a dielectric material with a dielectric constant suitable for transferring a capacitive fingerprint sensing signal from which the fingerprint sensor is capable of capturing biometric data of a finger of the user contacting the display.
4. The fingerprint sensing module of claim 1, further comprising:
- a substrate on which the display is arranged, the substrate being composed of a material having optical transparency suitable for transferring an optical fingerprint sensing signal from which the fingerprint sensor is capable of capturing biometric data of a finger of the user contacting the display, or the substrate being composed of a material having acoustic impedance suitable for transferring an acoustic fingerprint sensing signal from which the fingerprint sensor is capable of capturing biometric data of a finger of the user contacting the display, or the substrate being composed of a material having thermal transport properties suitable for transferring a thermal fingerprint sensing signal from which the fingerprint sensor is capable of capturing biometric data of a finger of the user contacting the display.
5. The fingerprint sensing module of claim 1, the display further being arranged to be screen-printed onto the substrate.
6. The fingerprint sensing module of claim 1, the fingerprint sensor further comprising:
- at least one connection point configured to connect the fingerprint sensor to the device.
7. The fingerprint sensing module of claim 1, the display further comprising:
- at least one connection point configured to connect the pixel elements of the display to the device.
8. The fingerprint sensing module of claim 1, the display being arranged on top of the fingerprint sensor and in contact with a sensing area of the fingerprint sensor in which the fingerprint sensor is being configured to detect a finger of the user contacting the display.
9. The fingerprint sensing module of claim 1, the display being arranged with an opening through which a finger of the user is configured to contact the fingerprint sensor.
10. The fingerprint sensing module of claim 1, wherein the device in which the fingerprint sensing module is integrated is a lock, electronic luggage tag, or a smartcard.
11. A method of a device comprising the fingerprint sensing module of claim 1 of displaying information to a user based on biometric data of the user, the method comprising:
- extracting biometric data of the user captured by the fingerprint sensor;
- comparing the extracted fingerprint feature data with enrolled biometric data, and if there is a match;
- generating information based on the extracted biometric data; and
- displaying the generated information on the display of the fingerprint sensing module.
12. The method of claim 11, wherein in case there is no match,
- the information is not generated and the method comprises:
- displaying information indicating unsuccessful authentication on the display of the fingerprint sensing module.
13. The method of claim 11, the generated information comprising a Card Verification Value, CVV, code or Card Verification Code, CVC, based on the biometric data, instructions to the user how to place her finger on the fingerprint sensing module during enrolment or authentication, or information regarding successful or unsuccessful authentication and/or enrolment with the device.
14. The method of claim 11, the device being a smartcard.
15. (canceled)
16. A computer program product comprising a non-transitory computer readable medium, the computer readable medium having a computer program embodied thereon, the computer program comprising computer-executable instructions for causing a fingerprint sensing system to perform the method of claim 11 when the computer-executable instructions are executed on a processing unit included in the fingerprint sensing system.
Type: Application
Filed: Feb 8, 2021
Publication Date: Feb 16, 2023
Applicant: Fingerprint Cards Anacatum IP AB (Göteborg)
Inventors: Hanna SKÅRBRATT (GÖTEBORG), Pontus JÄGEMALM (LERUM), Mats SLOTTNER (LERUM)
Application Number: 17/798,739